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Ultrasound-Triggered Enzymatic Gelation

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Journal Adv Mater
Date 2020 Jan 11
PMID 31922627
Citations 19
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Abstract

Hydrogels are formed using various triggers, including light irradiation, pH adjustment, heating, cooling, or chemical addition. Here, a new method for forming hydrogels is introduced: ultrasound-triggered enzymatic gelation. Specifically, ultrasound is used as a stimulus to liberate liposomal calcium ions, which then trigger the enzymatic activity of transglutaminase. The activated enzyme catalyzes the formation of fibrinogen hydrogels through covalent intermolecular crosslinking. The catalysis and gelation processes are monitored in real time and both the enzyme kinetics and final hydrogel properties are controlled by varying the initial ultrasound exposure time. This technology is extended to microbubble-liposome conjugates, which exhibit a stronger response to the applied acoustic field and are also used for ultrasound-triggered enzymatic hydrogelation. To the best of the knowledge, these results are the first instance in which ultrasound is used as a trigger for either enzyme catalysis or enzymatic hydrogelation. This approach is highly versatile and can be readily applied to different ion-dependent enzymes or gelation systems. Moreover, this work paves the way for the use of ultrasound as a remote trigger for in vivo hydrogelation.

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References
1.
Huynh U, Chambin O, du Poset A, Assifaoui A . Insights into gelation kinetics and gel front migration in cation-induced polysaccharide hydrogels by viscoelastic and turbidity measurements: Effect of the nature of divalent cations. Carbohydr Polym. 2018; 190:121-128. DOI: 10.1016/j.carbpol.2018.02.046. View

2.
Sirsi S, Borden M . State-of-the-art materials for ultrasound-triggered drug delivery. Adv Drug Deliv Rev. 2014; 72:3-14. PMC: 4041842. DOI: 10.1016/j.addr.2013.12.010. View

3.
Schutt E, Klein D, Mattrey R, Riess J . Injectable microbubbles as contrast agents for diagnostic ultrasound imaging: the key role of perfluorochemicals. Angew Chem Int Ed Engl. 2003; 42(28):3218-35. DOI: 10.1002/anie.200200550. View

4.
Pinkas D, Strop P, Brunger A, Khosla C . Transglutaminase 2 undergoes a large conformational change upon activation. PLoS Biol. 2007; 5(12):e327. PMC: 2140088. DOI: 10.1371/journal.pbio.0050327. View

5.
Huang J, Xu J, Xu R . Heat-sensitive microbubbles for intraoperative assessment of cancer ablation margins. Biomaterials. 2009; 31(6):1278-86. DOI: 10.1016/j.biomaterials.2009.11.008. View